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We revisit gravitational wave (GW) memory as the key to measuring spacetime symmetries, extending beyond its traditional role in GW searches.
Prospects for Memory Detection with Low-Frequency Gravitational Wave Detectors
Kristina Islo, Joseph Simon, Sarah Burke-Spolaor, and Xavier Siemens · 1906
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Cosmic Explorer: The U.S. Contribution to Gravitational-Wave Astronomy beyond LIGO
David Reitze, Rana X. Adhikari, Stefan Ballmer, Barry Barish, Lisa Barsotti, GariLynn Billingsley, Duncan A. Brown, Yanbei Chen, Dennis Coyne, Robert Eisenstein, Matthew Evans, Peter Fritschel, Evan D. Hall, Albert Lazzarini, Geoffrey Lovelace, Jocelyn Read, B. S. Sathyaprakash, David Shoemaker, Joshua Smith, Calum Torrie, Salvatore Vitale, Rainer Weiss, Christopher Wipf, and Michael Zucker · 1907
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Gravitational waves in general relativity. 7. Waves from axisymmetric isolated systems
H. Bondi, M. G. J. van der Burg, and A. W. K. Metzner · 1962
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Gravitational waves in general relativity. 8. Waves in asymptotically flat space-times
R. K. Sachs · 1962
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Infrared photons and gravitons
Steven Weinberg · 1965
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Radiation of gravitational waves by a cluster of superdense stars
Ya. B. Zel’dovich and A. G. Polnarev · 1974
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Kinematic Resonance and Memory Effect in Free Mass Gravitational Antennas
V. B. Braginsky and L. P. Grishchuk · 1985
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Black Holes: The Membrane Paradigm
Kip S. Thorne, R. H. Price, and D. A. Macdonald · 1986
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Gravitational-wave bursts with memory and experimental prospects
V. B. Braginsky and Kip S. Thorne · 1987
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Gravitational wave pulses with “velocity-coded memory”
L. P. Grishchuk and A. G. Polnarev · 1989
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Nonlinear nature of gravitation and gravitational wave experiments
D. Christodoulou · 1991
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Hereditary effects in gravitational radiation
Luc Blanchet and Thibault Damour · 1992
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Gravitational-wave bursts with memory: The Christodoulou effect
Kip S. Thorne · 1992
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Hereditary effects in gravitational radiation
Luc Blanchet and Thibault Damour · 1992
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Time-delay interferometry for LISA
Massimo Tinto, F. B. Estabrook, and J. W. Armstrong · 2002
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Use and abuse of the Fisher information matrix in the assessment of gravitational-wave parameter-estimation prospects
Michele Vallisneri · 2008
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Gravitational-wave memory and pulsar timing arrays
Rutger van Haasteren and Yuri Levin · 2009
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Aspects of the BMS/CFT correspondence
Glenn Barnich and Cedric Troessaert · 2010
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The gravitational-wave memory effect
Marc Favata · 2010
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The Einstein Telescope: a third-generation gravitational wave observatory
M. Punturo, M. Abernathy, F. Acernese, B. Allen, N. Andersson, et al · 2010
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Gravitational Memory, BMS Supertranslations and Soft Theorems
Andrew Strominger and Alexander Zhiboedov · 2014
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Geometry and Physics of Null Infinity
Abhay Ashtekar · 2014
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Semiclassical Virasoro symmetry of the quantum gravity 𝒮 \mathcal{S} -matrix
Daniel Kapec, Vyacheslav Lysov, Sabrina Pasterski, and Andrew Strominger · 2014
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New symmetries for the Gravitational S-matrix
Miguel Campiglia and Alok Laddha · 2015
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Advanced LIGO
LIGO Scientific Collaboration, J. Aasi, B. P. Abbott, R. Abbott, T. Abbott, M. R. Abernathy, K. Ackley, C. Adams, T. Adams, P. Addesso, and et al · 2015
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Advanced Virgo: a second-generation interferometric gravitational wave detector
F. Acernese, M. Agathos, K. Agatsuma, D. Aisa, N. Allemandou, A. Allocca, J. Amarni, P. Astone, G. Balestri, G. Ballardin, and et al · 2015
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Searching for gravitational wave memory bursts with the Parkes Pulsar Timing Array
J. B. Wang, G. Hobbs, W. Coles, R. M. Shannon, X. J. Zhu, D. R. Madison, M. Kerr, V. Ravi, M. J. Keith, R. N. Manchester, Y. Levin, M. Bailes, N. D. R. Bhat, S. Burke-Spolaor, S. Dai, S. Osłowski, W. van Straten, L. Toomey, N. Wang, and L. Wen · 2015
Cited alongside, same era.
NANOGrav Constraints on Gravitational Wave Bursts with Memory
Z. Arzoumanian, A. Brazier, S. Burke-Spolaor, S. J. Chamberlin, S. Chatterjee, B. Christy, J. M. Cordes, N. J. Cornish, P. B. Demorest, X. Deng, T. Dolch, J. A. Ellis, R. D. Ferdman, E. Fonseca, N. Garver-Daniels, F. Jenet, G. Jones, V. M. Kaspi, M. Koop, M. T. Lam, T. J. W. Lazio, L. Levin, A. N. Lommen, D. R. Lorimer, J. Luo, R. S. Lynch, D. R. Madison, M. A. McLaughlin, S. T. McWilliams, D. J. Nice, N. Palliyaguru, T. T. Pennucci, S. M. Ransom, X. Siemens, I. H. Stairs, D. R. Stinebring, K. Stovall, J. Swiggum, M. Vallisneri, R. van Haasteren, Y. Wang, W. W. Zhu, and NANOGrav Collaboration · 2015
Cited alongside, same era.
New Gravitational Memories
Sabrina Pasterski, Andrew Strominger, and Alexander Zhiboedov · 2016
Cited alongside, same era.
Detecting Gravitational-Wave Memory with LIGO: Implications of GW150914
Paul D. Lasky, Eric Thrane, Yuri Levin, Jonathan Blackman, and Yanbei Chen · 2016
Cited alongside, same era.
BMS in cosmology
The Weyl BMS group and Einstein’s equations
Laurent Freidel, Roberto Oliveri, Daniele Pranzetti, and Simone Speziale · 2021
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Gravitational-wave memory effects in brans-dicke theory: Waveforms and effects in the post-newtonian approximation
Shammi Tahura, David A. Nichols, and Kent Yagi · 2021
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Gravitational memory effects and Bondi-Metzner-Sachs symmetries in scalar-tensor theories
Shaoqi Hou and Zong-Hong Zhu · 2021
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Memory remains undetected: Updates from the second LIGO/Virgo gravitational-wave transient catalog
Moritz Hübner, Paul Lasky, and Eric Thrane · 2021
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Leveraging gravitational-wave memory to distinguish neutron star-black hole binaries from black hole binaries
Shubhanshu Tiwari, Michael Ebersold, and Eleanor Z. Hamilton · 2021
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A. Kehagias and A. Riotto · 2016
Cited alongside, same era.
Conserved charges of the extended Bondi-Metzner-Sachs algebra
Éanna É. Flanagan and David A. Nichols · 2017
Cited alongside, same era.
Laser Interferometer Space Antenna
Pau Amaro-Seoane, Heather Audley, Stanislav Babak, John Baker, Enrico Barausse, et al · 2017
Cited alongside, same era.
Superrotations and Black Hole Pair Creation
Andrew Strominger and Alexander Zhiboedov · 2017
Cited alongside, same era.
Spin memory effect for compact binaries in the post-Newtonian approximation
David A. Nichols · 2017
Cited alongside, same era.
Conserved charges of the extended Bondi-Metzner-Sachs algebra
Éanna É. Flanagan and David A. Nichols · 2017
Cited alongside, same era.
Lectures on the Infrared Structure of Gravity and Gauge Theory
Andrew Strominger · 2018
Cited alongside, same era.
Center-of-mass angular momentum and memory effect in asymptotically flat spacetimes
David A. Nichols · 2018
Cited alongside, same era.
Sabrina Pasterski, Monica Pate, and Ana-Maria Raclariu · 2021
Later among the works it cites.
Adding gravitational memory to waveform catalogs using BMS balance laws
Keefe Mitman, Dante A. B. Iozzo, Neev Khera, Michael Boyle, Tommaso De Lorenzo, Nils Deppe, Lawrence E. Kidder, Jordan Moxon, Harald P. Pfeiffer, Mark A. Scheel, Saul A. Teukolsky, and William Throwe · 2021
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Jeffrey D. Scargle, Zhoujian Cao, and Zhi-Chao Zhao · 2021
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Tests of General Relativity with GWTC-3
The LIGO Scientific Collaboration, the Virgo Collaboration, the KAGRA Collaboration, R. Abbott, H. Abe, F. Acernese, K. Ackley, N. Adhikari, R. X. Adhikari, V. K. Adkins, and et al · 2021
Later among the works it cites.
Gravitational-wave physics with Cosmic Explorer: Limits to low-frequency sensitivity
Evan D. Hall, Kevin Kuns, Joshua R. Smith, Yuntao Bai, Christopher Wipf, Sebastien Biscans, Rana X. Adhikari, Koji Arai, Stefan Ballmer, Lisa Barsotti, Yanbei Chen, Matthew Evans, Peter Fritschel, Jan Harms, Brittany Kamai, Jameson Graef Rollins, David Shoemaker, Bram J. J. Slagmolen, Rainer Weiss, and Hiro Yamamoto · 2021
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Gravitational memory effects and higher derivative actions
Mahdi Godazgar, George Macaulay, George Long, and Ali Seraj · 2022
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GWFISH: A simulation software to evaluate parameter-estimation capabilities of gravitational-wave detector networks
U. Dupletsa, J. Harms, B. Banerjee, M. Branchesi, B. Goncharov, A. Maselli, A. C. S. Oliveira, S. Ronchini, and J. Tissino · 2022
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Curious case of GW200129: Interplay between spin-precession inference and data-quality issues
Ethan Payne, Sophie Hourihane, Jacob Golomb, Rhiannon Udall, Derek Davis, and Katerina Chatziioannou · 2022
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Gyroscopic gravitational memory
Ali Seraj and Blagoje Oblak · 2023
Closest in time.
Outlook for detecting the gravitational-wave displacement and spin memory effects with current and future gravitational-wave detectors
Alexander M. Grant and David A. Nichols · 2023
Closest in time.
Detecting the gravitational wave memory effect with TianQin
Shuo Sun, Changfu Shi, Jian-dong Zhang, and Jianwei Mei · 2023
Closest in time.
Can gravitational-wave memory help constrain binary black-hole parameters? A LISA case study
Silvia Gasparotto, Rodrigo Vicente, Diego Blas, Alexander C. Jenkins, and Enrico Barausse · 2023
Closest in time.
Gravitational wave memory beyond general relativity
Lavinia Heisenberg, Nicolás Yunes, and Jann Zosso · 2023
Closest in time.
Measuring properties of primordial black hole mergers at cosmological distances: Effect of higher order modes in gravitational waves
Ken K. Y. Ng, Boris Goncharov, Shiqi Chen, Ssohrab Borhanian, Ulyana Dupletsa, Gabriele Franciolini, Marica Branchesi, Jan Harms, Michele Maggiore, Antonio Riotto, B. S. Sathyaprakash, and Salvatore Vitale · 2023
Closest in time.
Numerical relativity surrogate model with memory effects and post-Newtonian hybridization
Jooheon Yoo, Keefe Mitman, Vijay Varma, Michael Boyle, Scott E. Field, Nils Deppe, François Hébert, Lawrence E. Kidder, Jordan Moxon, Harald P. Pfeiffer, Mark A. Scheel, Leo C. Stein, Saul A. Teukolsky, William Throwe, and Nils L. Vu · 2023
Closest in time.
Shun Yin Cheung, Paul D. Lasky, and Eric Thrane · 2024
Closest in time.
Yumeng Xu, Maria Rosselló-Sastre, Shubhanshu Tiwari, Michael Ebersold, Eleanor Z Hamilton, Cecilio García-Quirós, Héctor Estellés, and Sascha Husa · 2024
Closest in time.
Gravitational wave memory of compact binary coalescence in the presence of matter effects
Dixeena Lopez, Shubhanshu Tiwari, and Michael Ebersold · 2024
Closest in time.
Monica Colpi, Karsten Danzmann, Martin Hewitson, Kelly Holley-Bockelmann, Philippe Jetzer, et al · 2024
Closest in time.
Population Properties of Compact Objects from the Second LIGO-Virgo Gravitational-Wave Transient Catalog
R. Abbott, T. D. Abbott, S. Abraham, F. Acernese, K. Ackley, A. Adams, C. Adams, R. X. Adhikari, V. B. Adya, C. Affeldt, and et al · 2041
Closest in time.
Gravitational Memory in Binary Black Hole Mergers
Denis Pollney and Christian Reisswig · 2041
Closest in time.